Grizzly bears have made such a comeback across eastern Montana that in 2017, the state hired its first-ever prairie-based grizzly manager: wildlife biologist Wesley Sarmento.
For some seven years, Sarmento worked to keep both the bears, which are still listed as threatened under the Endangered Species Act, and the humans, who are sprawling into once-wild spaces, out of trouble. Based in the small city of Conrad, population 2,553, he acted sort of like a first responder, trying to defuse potentially dangerous situations. He even got caught in some himself—which is why, before he left the role to pursue a PhD, he turned to drones to get the job done.
The bear necessities
Sarmento was studying mountain goats in Glacier National Park when he first started working with bears. To better understand how goats responded to the apex predator, he dressed up in a bear costume once a week for over three years.
When he later started as grizzly manager, he often drove long distances to push bears away from farms. Bears are drawn to spilled or leaking grains, and an open silo quickly turns into a buffet. Sarmento would typically arrive armed with a shotgun, cracker shells, and bear spray, but after he narrowly escaped getting mauled one day, he knew he had to pivot.
“In that moment,” he says, “I was like, I am gonna get myself killed.”
A bird’s-eye view
Sarmento first turned to two Airedale dogs, a breed known for deterring bears on farms, but the dogs were easily sidetracked. Meanwhile, drones were slowly becoming more common tools for biologists in a range of activities, including counting birds and mapping habitats.
He first took one into the field in 2022, when a grizzly mom and two cubs were found rummaging around in a silo outside of town. The drone’s infrared sensors helped him quickly find their location, and he used the aircraft’s sound to drive them away from the property. (Researchers suspect bears instinctively dislike the whir of blades because it sounds like a swarm of bees.) “The whole thing was so clean and controlled,” he says. “And I did it all from the safety of my truck.”
Since then, the flying machine that Sarmento bought for $4,000—a fairly simple model with a thermal camera and 30 minutes of battery life—has shown its potential for detecting grizzlies in perilous terrain he’d otherwise have to approach on foot, like dense brush or hard-to-reach river bottoms.
A new technological foundation
Now studying wildlife ecology at the University of Montana, Sarmento is hoping to design a drone campus police can use to deter black bears from school grounds. In the future, he hopes, AI image recognition might be broadly integrated into his wildlife management work—maybe even helping drones identify bears and autonomously divert them from high-traffic areas.
All this helps keep bears from learning behaviors that lead to conflict with people—which typically ends badly for the bear and is occasionally fatal for humans.
“The out-of-the-box technology doesn’t exist yet, but the hope is to keep exploring applications,” he says. “Drones are the next frontier.”
Emily Senkosky is a writer with a master’s degree in environmental science journalism from the University of Montana.
Dr. Edna Foa served for decades as a professor of clinical psychology in psychiatry at the University of Pennsylvania, where she also directed the Center for the Treatment and Study of Anxiety (CTSA), the internationally renowned program she founded in 1979. Through the CTSA, Edna created not only a hub for groundbreaking research, but also a training ground that would shape the future of evidence-based treatment for anxiety, obsessive compulsive disorder (OCD), and post-traumatic stress disorder (PTSD).
At a time when OCD was poorly understood and often ineffectively treated, Edna helped establish and rigorously validate exposure and response prevention (ERP) as a gold-standard intervention. Building on the early behavioral work of pioneers before her, she brought a level of empirical precision, clinical sophistication, and dissemination that transformed ERP from a promising approach into a cornerstone of modern treatment. In doing so, she fundamentally changed what recovery could look like for millions of people living with OCD.
Her influence extended well beyond OCD. Dr. Foa was also a central figure in the development of cognitive-behavioral models and treatments for PTSD, including prolonged exposure therapy, which has become one of the most widely used and effective interventions for trauma-related disorders. Across both domains, her work exemplified a rare integration of theory, research, and clinical application—always grounded in a singular goal: to reduce suffering and restore lives.
Her connection to the International OCD Foundation (IOCDF) was a natural extension of her commitment to bridging science and real-world impact. Edna was deeply engaged with the IOCDF community over many years, contributing to its mission of improving access to effective treatment and advancing understanding of OCD. The Foundation awarded her with the Outstanding Career Achievement Award in 2011. She was a frequent presence at conferences, where she not only shared her research but also helped elevate the standards of clinical care through teaching, mentorship, and collaboration.
The IOCDF’s growth into a global leader in OCD advocacy, education, and training reflects, in many ways, the scientific foundation that Edna helped build. Her work made it possible for organizations like the IOCDF to promote treatments that are not only evidence-based, but truly life-changing. And through her direct involvement, she helped ensure that the connection between research and practice remained strong, dynamic, and accessible.
Edna Foa showed us what it means to dedicate a life to advancing knowledge in the service of humanity. She illuminated a path forward for so many, and her influence will continue to guide the field for generations to come.
Below are several tributes to Dr. Foa from IOCDF community members.
From Jonathan Grayson, PhD
My mentor, Tom Borkovec, used to talk about our psychological lineage; that in 1979, you only had to go back a few generations of your “forefathers” to reach the founders of American psychology. In this respect, Tom is my psychology father – he taught me to discipline my thinking – he encouraged wild flights of speculation, but to always temper it in print with what could be researched and proved. With this in mind, Edna is my psychology mother. As I noted elsewhere, for all of us who work with OCD, we are her children, grandchildren and so on.
I first met Edna in 1979 at Joseph Wolpe’s Behavior Therapy Unit at Temple University. She hired me as an adjunct research assistant professor. This was in the ancient days at the height of the first wave. There was no cognitive behavioral therapy. ABCT was AABT, American Association of Behavior Therapy. The disorder we were studying was OC, the DSM labeling it obsessive compulsive disorder doesn’t yet exist. Edna was on the first of her landmark OC grants.
She was the flashpoint for all that we do with OCD. Don’t get me wrong, she didn’t invent ERP, but her work was/is the basis of all OCD treatment today. In the same way that cognitive therapy techniques existed before Aaron Beck, but his work was the flashpoint of that second wave; and the techniques of ACT pre-exist Stephen Hayes, but his work and thinking were the flashpoint of the third wave. There was no OC Foundation.
I joined Edna and Gail Steketee and to work with Edna was always a collaboration. So many hours of discussing, designing and analyzing research. Writing papers together often until midnight and beyond. You may have heard that Edna was demanding. She was, but that had nothing to do with the hours we worked. The same clinical skills she used with patients, she used in choosing those who worked with her. We were all driven. There are those who found her direct delivery difficult, but it wasn’t anger or belittling, it wasn’t intimidating (okay, maybe a little), she was simply direct without sugar coating. The truth about Edna was that she was caring and very generous.
As I said, our research was a collaboration and the order of authors on publications reflected our contributions. If you had a research idea that was tangential to her main projects, she would support you. When I told her I thought we should have support groups to help sufferers maintain their gains, I was given a free hand to develop and run GOAL as I saw fit. When my son was nine months old and I told Edna that I was going to change my work hours to: one and a half daytime hours and the rest of my hours after 4 pm, she accepted this. She didn’t have to admonish me or warn me to do my job, Edna knew the kind of people she had chosen. She wanted the people who worked with her to grow. When it came time for me to move on, she was like any parent, sorry for me to go, but happy for me to pursue my life. She was like that with all of us. So many of those who have shaped the OCD world worked with Edna. While I was there, Michael Kozak joined the team and later Edna and Michael published their ground breaking paper on emotional processing. Alec Pollard, Charly Mansueto and Rich McNally also passed through our center. Marty Franklin and Jon Abramowitz came after me making up the many generations of her “children.”
For those whom I’ve neglected to mention, forgive me, but the list is too long. My OCD career began in 1979. Her loss is a hole in the fabric of reality, but her legacy and wisdom lives on through all of us whose OCD psychological lineage can be traced back to Edna Foa.
From Marty Franklin, PhD
I am writing this tribute while waiting at an airport gate for a flight to a national conference. Over the course of the next few days I will have the opportunity to present applied research data, participate in a clinical roundtable about OCD and its treatment, & engage with colleagues as we toss around ideas for how best to move the field forward. Edna’s profound influence on my career, my life, and even my thinking is most often accessible during relatively quiet moments like this, where opportunities for reflection make their way forward amidst the work I have committed to myself to doing. Indeed, I learned of Edna’s passing a few weeks ago while right in the middle of presenting a clinical training about exposure-based treatments for OCD. I paused for a moment to take it all in, but before I could decide how best to proceed under the circumstances, I heard Edna’s voice, in her characteristic and unmistakable Israeli accent, telling me that these clinicians took time out of their busy schedules to receive this training, and therefore I must continue straight through to the end. My feelings? You can process those later. Classic Edna.
My very first day of internship in 1991 at the Medical College of Pennsylvania was spent in Edna’s presence at her Center for the Treatment and Study of Anxiety, the unit she established in 1979 to develop, test, and disseminate cognitive-behavioral interventions for anxiety and related conditions. Edna’s work even by then was highly influential, and her legend was already well in the making. At that initial meeting, Edna slid a formidable stack of old-school medical charts across the table to me and said, “Marty, is it? These are your OCD cases for this rotation.” I thanked her, then asked the first of myriad naïve questions in the legendary Tuesday Meetings: “When will I receive the training to treat these cases?” She pivoted back to look at Michael Kozak, her Clinical Director, as if to wax nostalgic about the process of indoctrinating yet another green intern. Edna then gestured at the pile, and said, “The training is in there.” Edna was a fine clinician too, and thus read well my horrified expression, then offered, “But don’t worry: we’ll help you.” True to her word, she did exactly that.
Edna’s influence on the field broadly speaking, on the development and expansion of cognitive-behavioral theory, on using clinical science to alleviate human suffering, and in pushing the proverbial envelope, has been chronicled elsewhere and cannot ever be overstated. Edna was one of the true pillars of clinical psychology, and the effects of her work will live on in perpetuity, of that I have little doubt. What was less well known except for those of us fortunate enough to have been mentored by Edna was the incredible amount of time and emotional investment she made in seeding the field with the next generation of theorists, scholars, and clinicians who would carry that work forward in the years to come. I count myself in that incredibly lucky group, all of whom were blessed by her personal investment in our training and careers. Edna had exacting standards for herself and for us, and fully expected that same level of investment and intensity on our part. Vigorous debate was just part of the process, where occasionally the fur would fly. But Edna also knew us well enough to understand what each of us needed in order to help us make the commitment needed to join her in the vanguard. In one of our many career development conversations back in the mid 1990s, likely in her East Falls office well after 8 pm, I was fretting about the “soft money” environment of academic psychiatry, and openly wondering if it was time to pivot to hard-line academic psychology or even to private practice. Edna stopped my rumination dead in its tracks, looked into the depths of my soul (which she did regularly), and said, “It’s only soft money if you can’t get it…and I know you can get it. Plus, academia is a really fun way to make a living, and a life.” Edna Foa believed in me: it was about damn time to believe in myself as well, and to make the commitment required to honor that belief. And to always keep pushing to get better at the work, which is truly a never-ending process.
Sitting in this airport now, on my way to give another set of talks on topics I have come to know very well and continue to pursue with the passion that comes from also believing that this work is vital, I concur with Edna’s assessment of academia, and am truly grateful that I listened. Thank you, Edna, for illuminating a path forward for me, as I know you did for countless others. You were unforgettable, and your work will continue on in the hands of those you mentored and trained to carry on the legacy.
From Gail Steketee, PhD, MSW
I had the pleasure and helpful educational challenge of training under Dr. Edna Foa beginning in 1976 and continuing for a decade during which I worked closely with her studying OCD and co-authoring manuscripts and federal grant applications. Edna generously provided me with excellent clinical supervision during my training at the Behavior Therapy Unit at Temple University where I learned how to treat phobias, agoraphobia and panic, and especially OCD. Edna’s encouragement and specific feedback guided my understanding of patients and how to provide effective treatment. Her supervision coincided with the end of her important early study of the impact of exposure and response prevention, following in the steps of Victor Meyer, Isaac Marks, and Jack Rachman. I treated the last few patients with OCD in her study and co-authored a case report stemming from that work – my first published paper in the field in 1977.
Edna opened many doors for me to join colleagues around the world who were studying OCD and behavioral treatment methods. Together we wrote and published 26 papers and 14 book chapters. And I mean “together”. We would schedule writing times during which Edna generated ideas and spoke aloud in her heavily accented Israeli English while I contributed my thoughts and sharpened the language as we went along. Grant applications were a special challenge as NIMH became strict about page limits. More than once we stayed up all night writing grants to meet the deadline – we were both younger then – and once we actually drove to Bethesda to deliver a grant application just in time for the deadline. I joined Edna at many conferences in the U.S. (especially AABT [now ABCT] and OCF [now IOCDF]) and in Europe at EABCT and WCBCT (the World Congress of CBT). We met many delightful OCD researchers and clinicians – it was an exhilarating time. I traveled with Edna and friends to her home country of Israel where she treated us to delightful sights and experiences including the Dead Sea.
The 10 year period with Edna was a heady time as my career unfolded. She supported my decision to get a PhD in social work at Bryn Mawr while working full time with her on our research. Eventually, I left Temple to take a full-time faculty position at Boston University, arriving with a strong publication record already in hand thanks to Edna’s masterful training and modeling of how to design and conduct research, how to write papers that accurately reflected the study and its findings, how to write strong grant applications, and how to connect with energizing colleagues around the world. I am grateful for her mentoring that enabled me to establish my own career and become a mentor to others. She was a brilliant theoretician who spawned impressive thinking and research on OCD, PTSD, behavior therapy, and related topics. Hers was a long and full life. She will be sorely missed.
Dr. Judith L. Rapoport has left an indelible mark on the field of obsessive compulsive disorder (OCD) — not only through her extraordinary scientific contributions, but through the compassion, curiosity, and humanity she brought to her work. For countless individuals and families, her legacy is not just measured in research breakthroughs, but in hope restored and lives changed.
At a time when OCD was widely misunderstood, often hidden, and rarely discussed, Dr. Rapoport helped bring it into the light. Through her pioneering work at the National Institute of Mental Health, she gave shape and voice to a condition that many struggled to name. She was among the first to recognize that OCD could affect children, and that these young people deserved understanding, accurate diagnosis, and effective care. This insight alone transformed the trajectory of the field and opened doors for earlier intervention and support for families who had long felt alone.
What set Dr. Rapoport apart was not only her intellect, but her deep commitment to the people behind the science. She approached each question with both rigor and empathy, helping to establish treatments that have since become the gold standard, including exposure and response prevention (ERP) and medication. Her work helped shift the narrative—away from blame or misunderstanding, and toward recognition of OCD as a real, treatable medical condition.
Beyond the lab and clinic, Dr. Rapoport had a rare gift for storytelling. Her book, The Boy Who Couldn’t Stop Washing, brought readers into the lived experience of OCD with clarity and care. For many, it was the first time they saw their own struggles reflected with such honesty and dignity. It helped families feel seen, understood, and less alone — an impact that continues to ripple outward today. The Boy Who Couldn’t Stop Washing impacted professionals as well, providing an eye-opening introduction and gateway to the world of working with OCD.
For these accomplishments and more, Dr. Rappaport received the IOCDF’s 2018 Career Achievement Award. Her influence extends through the many clinicians and researchers she has mentored, each carrying forward her dedication to both excellence and empathy. Through them, her work continues to grow, shaping the future of OCD research and care in ways that are both profound and deeply human.
To honor Dr. Judith Rapoport is to honor a career defined not only by discovery, but by kindness and purpose. She helped the world better understand OCD — but more importantly, she helped people living with OCD feel understood. And in doing so, she changed lives in ways that will endure for generations.
Electrotactile feedback via transcutaneous interferential electrical stimulation generates temporally modulated stimulation fields and enables frequency-domain adjustment with carrier and beat frequencies. To systematically characterize these effects, we present a simulation framework that integrates tissue-scale electrical potential simulation with the finite element method and axon-scale dynamics using the axon cable equation, which incorporates cable theory and the Hodgkin–Huxley model, to predict axon activation and tactile perceptual metrics. We simulated a simplified glabrous skin model with three orthogonally oriented axons. Results show that the carrier frequency in the range of 1–4 kHz determines the upper bounds of the perceived field size, reaching up to 1.6 mm and exceeding the 1 mm electrode diameter, and perceived intensity, whereas the beat frequency in the range of 0–100 Hz adjusts these quantities within these bounds. Furthermore, axons oriented perpendicular to the skin surface exhibit lower activation thresholds than those oriented parallel. Unlike the conventional approaches of transcutaneous electrical stimulation, our results suggest that transcutaneous interferential electrical stimulation can shape the perceived field and perceived intensity without electrode reconfiguration or amplitude modulation. These findings clarify the distinct roles of carrier and beat frequency in tactile perception. This paper provides a theoretical foundation for frequency-domain adjustment of electrotactile interfaces and points toward compact, programmable systems. Quantitative validation through psychophysical experiments will further test and refine these predictions.
Post-stroke insomnia (PSI) is a critical biological barrier to neurorehabilitation afflicting over half of all stroke survivors. Traditional sedatives often force clinicians into a therapeutic dilemma between sleep efficacy and cognitive suppression. The microbiota-gut-brain (MGB) axis has recently emerged as a transformative target to resolve this impasse. Acute stroke triggers profound autonomic dysfunction, causing immediate intestinal barrier collapse. This “leaky gut” facilitates the systemic translocation of lipopolysaccharides (LPS) and activates the NLRP3 inflammasome. The resulting inflammatory storm hijacks central tryptophan metabolism via the indoleamine 2,3-dioxygenase (IDO) enzyme. This “tryptophan steal” diverts serotonin precursors toward neurotoxic kynurenine pathways, driving severe cortical hyperarousal. Sleep fragmentation then prevents the glymphatic system from clearing metabolic waste, further exacerbating neuroinflammation. To break this vicious cycle of neurotoxicity, we propose a phase-dependent therapeutic framework. During the highly vulnerable acute phase, interventions must prioritize gut barrier protection using postbiotics to mitigate infection risks under CNS injury-induced immunodepression (CIDS), often discussed as stroke-induced immunosuppression. As patients enter the chronic phase, therapy shifts toward metabolic restoration using live therapeutics, such as washed microbiota transplantation (WMT) and next-generation psychobiotics like Akkermansia muciniphila. Targeting the MGB axis offers a mechanism-based strategy to achieve precision sleep medicine, restoring the biological foundation necessary for optimal neuroplasticity and recovery.
The Mental Health Commission of Canada is pleased to welcome Shauna Cronin (she/her) as our new Vice President, Programs, effective April 27, 2026.
Shauna brings nearly two decades of national leadership in mental health system transformation, program design, and policy innovation. Her experience spans complex, multi‑partner initiatives across governments, communities, and lived and living experience networks, with notable contributions through organizations such as CAMH, Frayme, Stepped Care Solutions 2.0, and the Global Leadership Exchange.
A widely respected and internationally recognized leader, Shauna is known for turning bold vision into measurable impact. Her work has consistently advanced equity, strengthened service integration, and elevated Canada’s leadership in mental health, while meaningfully valuing First Nations, Inuit, and Métis voices as part of an ongoing reconciliation journey.
Shauna holds advanced degrees in political science, strategic communications, and international affairs, is currently pursuing a Master’s in Nonprofit and Philanthropic Leadership, and holds a Health Leadership designation from the Rotman School of Management. She brings a rare combination of deep policy insight, collaborative systems leadership, and a genuine commitment to people and outcomes.
We look forward to the perspective, care, and leadership Shauna will bring as she joins our exceptional Programs team and helps advance mental health and well-being across Canada.
A rare warm spell in January melted enough snow to uncover Cornell University’s newest athletic field, built for field hockey. Months before, it was a meadow teeming with birds and bugs; now it’s more than an acre of synthetic turf roughly the color of the felt on a pool table, almost digital in its saturation. The day I walked up the hill from a nearby creek to take a look, the metal fence around the field was locked, but someone had left a hallway-size piece of the new simulated grass outside the perimeter. It was bristly and tough, but springy and squeaky under my booted feet. I could imagine running around on it, but it would definitely take some getting used to.
My companion on this walk seemed even less favorably disposed to the thought. Yayoi Koizumi, a local environmental advocate, has been fighting synthetic-turf projects at Cornell since 2023. A petite woman dressed that day in a faded plum coat over a teal vest, with a scarf the colors of salmon, slate, and sunflowers, Koizumi compulsively picked up plastic trash as we walked: a red Solo cup, a polyethylene Dunkin’ container, a five-foot vinyl panel. She couldn’t bear to leave this stuff behind to fragment into microplastic bits—as she believes the new field will. “They’ve covered the living ground in plastic,” she said. “It’s really maddening.”
The new pitch is one part of a $70 million plan to build more recreational space at the university. As of this spring, Cornell plans to install something like a quarter million square feet of synthetic grass—what people have colloquially called “astroturf” since the middle of the last century. University PR says it will be an important part of a “health-promoting campus” that is “supportive of holistic individual, social, and ecological well-being.” Koizumi runs an anti-plastic environmental group called Zero Waste Ithaca, which says that’s mostly nonsense.
This fight is more than just the usual town-versus-gown tension. Synthetic turf used to be the stuff of professional sports arenas and maybe a suburban yard or two; today communities across the United States are debating whether to lay it down on playgrounds, parks, and dog runs. Proponents say it’s cheaper and hardier than grass, requiring less water, fertilizer, and maintenance—and that it offers a uniform surface for more hours and more days of the year than grass fields, a competitive advantage for athletes and schools hoping for a more robust athletic program.
But while new generations of synthetic turf look and feel better than that mid-century stuff, it’s still just plastic. Some evidence suggests it sheds bits that endanger users and the environment, and that it contains PFAS “forever chemicals”—per- and polyfluoroalkyl substances, which are linked to a host of health issues. The padding within the plastic grass is usually made from shredded tires, which might also pose health risks. And plastic fields need to be replaced about once a decade, creating lots of waste.
Yet people are buying a lot of the stuff. In 2001, Americans installed just over 7 million square meters of synthetic turf, just shy of 11,000 metric tons. By 2024, that number was 79 million square meters—enough to carpet all of Manhattan and then some, almost 120,000 metric tons. Synthetic turf covers 20,000 athletic fields and tens of thousands of parks, playgrounds, and backyards. And the US is just 20% of the global market.
Where real estate is limited and demand for athletic facilities is high, artificial turf is tempting. “It all comes down to land and demand.”
Frank Rossi, professor of turf science, Cornell
Those increases worry folks who study microplastics and environmental pollution. Any actual risk is hard to parse; the plastic-making industry insists that synthetic fields are safe if properly installed, but lots of researchers think that isn’t so. “They’re very expensive, they contain toxic chemicals, and they put kids at unnecessary risk,” says Philip Landrigan, a Boston College epidemiologist who has studied environmental toxins like lead and microplastics.
But at Cornell, where real estate is limited and demand for athletic facilities is high, synthetic turf was a tempting option. As Frank Rossi, a professor of turf science at Cornell, told me: “It all comes down to land and demand.”
In 1965, Houston’s new, domed baseball stadium was an icon of space-age design. But the Astrodome had a problem: the sun. Deep in the heart of Texas, it shined brightly through the Astrodome’s skylights—so much so that players kept missing fly balls. So the club painted over the skylights. Denied sunlight, the grass in the outfield withered and died.
A replacement was already in the works. In the late 1950s a Ford Foundation–funded educational laboratory determined that a soft, grasslike surface material would give city kids more places to play outside and had prevailed upon the Monsanto corporation to invent one. The result was clipped blades of nylon stuck to a rubber base, which the company called ChemGrass. Down it went into Houston’s outfield, where it got a new, buzzier name: AstroTurf.
Workers lay artificial turf at the Astrodome in Houston on July 13, 1966. Developed by Monsanto, the material was originally known as ChemGrass but was later renamed AstroTurf after the stadium.
AP PHOTO/ED KOLENOVSKY, FILE
That first generation of simulated lawn was brittle and hard, but quality has improved. Today, there are a few competing products, but they’re all made by extruding a petroleum-based polymer—that’s plastic—through tiny holes and then stitching or fusing the resulting fibers to a carpetlike bottom. That gets attached to some kind of padding, also plastic. In the 1970s the industry started layering that over infill, usually sand; by the 1990s, “third generation” synthetic turf had switched to softer fibers made of polyethylene. Beneath that, they added infill that combined sand and a soft, cheap shredded rubber made from discarded automobile tires, which pile up by the hundreds of millions every year. This “crumb rubber” provides padding and fills spaces between the blades and the backing.
In the early 1980s, nearly half the professional baseball and football fields in the US had synthetic turf. But many players didn’t like it. It got hotter than real grass, gave the ball different action, and seemed to be increasing the rate of injuries among athletes. Since the 1990s, most pro sports have shifted back toward grass—water and maintenance costs pale in comparison to the importance of keeping players happy or sparing them the risk of injury.
But at the same time, more universities and high schools are buying the artificial stuff. The advantages are clear, especially in places where it rains either too much or not enough. A natural-grass field is usable for a little more than 800 hours a year at the most, spread across just eight months in the cooler, wetter northern US. An artificial-turf field can see 3,000 hours of activity per year. For sports like lacrosse, which begins in late winter, this makes artificial turf more appealing. Most lacrosse pitches are now synthetic. So are almost all field hockey pitches; players like the way the even, springy turf makes the ball bounce.
Furthermore, supporters say synthetic turf needs less maintenance than grass, saving money and resources. That’s not always true; workers still have to decompact the playing surface and hose it off to remove bird poop or cool it down. Sometimes the infill needs topping up. But real grass allows less playing time, and because grass athletic fields often need to be rotated to avoid damage, synthetic ground cover can require less space. Hence the market’s explosive growth in the 21st century.
The city and town of Ithaca—two separate political entities with overlapping jurisdiction over Cornell construction projects—held multiple public meetings about the university’s new synthetic fields: the field hockey pitch and a complex called the Meinig Fieldhouse. Koizumi’s group turned up in force, and a few folks who worked at Cornell came to oppose the idea too—submitting pages of citations and studies on the risks of synthetic grass.
At two of those meetings, dozens of Cornell athletes turned out to support the turf. Representatives of the university and the athletic department declined to speak with me for this story, citing an ongoing lawsuit from Zero Waste Ithaca. But before that, Nicki Moore, Cornell’s director of athletics, told a local newspaper that demand from campus groups and sports teams meant the fields were constantly overcrowded. “Activities get bumped later and later, and sometimes varsity teams won’t start practicing until 10 at night, you know?” Moore told the paper. “Availability of all-weather space should normalize scheduling a great deal.”
That argument wasn’t universally convincing. “It’s a bad idea, but that’s from the environmental perspective,” says Marianne Krasny, director of Cornell’s Civic Ecology Lab and one of the speakers at those hearings. “Obviously the athletic department thinks it’s a great idea.”
GETTY IMAGES
Members of Cornell on Fire, a climate action group with members from both the university and the town, joined in opposing the use of artificial turf, citing the fossil-fuel origins of the stuff. They described the nominal support of the project from student athletes as inauthentic, representing not grassroots support but, yes, an astroturf campaign.
Sorting out the actual science here isn’t simple. Over time, the plastic that synthetic turf is made of sheds bits of itself into the environment. In one study, published in 2023 in the journal Environmental Pollution, researchers found that 15% of the medium-size and microplastic particles in a river and the Mediterranean Sea outside Barcelona, Spain, came from artificial turf, mostly in the form of tiny green fibers. Back in 2020, the European Chemicals Agency estimated that infill material from artificial-turf fields in the European Union was contributing 16,000 metric tons of microplastics to the environment each year—38% of all annual microplastic pollution. Most of that came from the crumb rubber infill, which Europe now plans to ban by 2031.
This pollution worries the Cornell activists. Ithaca is famous for scenic gorges and waterways. The new field hockey pitch is uphill from a local creek that empties into Cayuga Lake, the longest of the Finger Lakes and the source of drinking water for over 40,000 people.
And it’s not just the plastic bits. When newer generations of synthetic turf switched to durable high-density polyethylene, the new material gunked up the extruders used in the manufacturing process. So turf makers started adding fluorinated polymers—a type of PFAS. Some of these environmentally persistent “forever chemicals” cause cancer, disrupt the endocrine system, or lead to other health problems. Research in several different labs has found PFAS in many types of plastic grass.
But the key to assessing the threat here is exposure. Heather Whitehead, an analytical chemist then at the University of Notre Dame, found PFAS in synthetic turf at levels around five parts per billion—but estimated it’d be in water running off the fields at three parts per trillion; for context, the US Environmental Protection Agency’s legal drinking-water limit on one of the most widespread and dangerous PFAS chemicals is four parts per trillion. “These chemicals will wash off in small amounts for long periods of time,” says Graham Peaslee, Whitehead’s advisor and an emeritus nuclear physicist who studies PFAS concentrations. “I think it’s reason enough not to have artificial turf.”
This gets confusing, though. There are over 16,000 different types of PFAS, few have been well studied, and different companies use different manufacturing techniques. Companies represented by the Synthetic Turf Council now “use zero intentionally added PFAS,” says Melanie Taylor, the group’s president. “This means that as the field rolls off the assembly line, there are zero PFAS-formulated materials present.”
Some researchers are skeptical of the industry’s assurances. They’re hard to confirm, especially because there are a lot of ways to test for PFAS. The type of synthetic turf going onto the new field hockey pitch at Cornell is called GreenFields TX; the university had a sample tested using an EPA method that looks for 40 different PFAS compounds. It came back negative for all of them. The local activists countered that the test doesn’t detect the specific types they’re most concerned about, and in 2025 they paid for three more tests on newly purchased synthetic turf. Two clearly found fluorine—the F in “PFAS”—and one identified two distinct PFAS compounds. (The company that makes GreenFields TX, TenCate, declined to comment, citing ongoing litigation.)
PFAS isn’t the only potential problem. There’s also the crumb rubber made from tires. A billion tires get thrown out every year worldwide, and if they aren’t recycled they sit in giant piles that make great habitats for rats and mosquitoes; they also occasionally catch fire. Lots of the tires that go into turf are made of styrene-butadiene rubber, or SBR. In bulk, that’s bad. Butadiene is a carcinogen that causes leukemia, and fumes from styrene can cause nervous system damage. SBR also contains high levels of lead.
But how much of that comes out of synthetic-turf infill? Again, that’s hotly debated. Researchers around the world have published suggestive studies finding potentially dangerous levels of heavy metals like zinc and lead in synthetic turf, with possible health risks to people using the fields. But a review of many of the relevant studies on turf and crumb rubber from Canada’s National Collaborating Centre for Environmental Health determined that most well-conducted health risk assessments over the last decade found exposures below levels of concern for cancer and certain other diseases. A 2017 report by the European Chemicals Agency—the same people who found all those microplastics in the environment—“found no reason to advise people against playing sports on synthetic turf containing recycled rubber granules as infill material.” And a multiyear study from the EPA, published in 2024, found much the same thing—although the researchers said that levels of certain synthetic chemicals were elevated inside places that used indoor artificial turf. They also stressed that the paper was not a risk assessment.
The problem is, the kinds of cancers these chemicals can cause may take decades to show up. Long-term studies haven’t been done yet. All the evidence available so far is anecdotal—like a series for the Philadelphia Inquirer that linked the deaths of six former Phillies players from a rare type of brain cancer called glioblastoma to years spent playing on PFAS-containing artificial turf. That’d be about three times the usual rate of glioblastoma among adult men, but the report comes with a lot of cautions—small sample size, lots of other potential causes, no way to establish causation.
Synthetic turf has one negative that no one really disputes: It gets very hot in the sun—as hot as 150 °F (66 °C). This can actually burn players, so they often want to avoid using a field on very hot days.
A field hockey player from Cornell University passes the ball during a game played on artificial turf at Bryant University in 2025. Cornell’s own turf field will be ready for the 2026 season.
GETTY IMAGES
Athletes playing on artificial turf also have a higher rate of foot and ankle injuries, and elite-level football players seem to be more predisposed to knee injuries on those surfaces. But other studies have found rates of knee and hip injury to be roughly comparable on artificial and natural turf—a point the landscape architect working on the Cornell project made in the information packet the university sent to the city. Athletic departments and city parks departments say that the material’s upsides make it worthwhile, given that there’s no conclusive proof of harm.
Back in Ithaca, Cornell hired an environmental consulting firm called Haley & Aldrich to assess the evidence. The company concluded that none of the university’s proposed installations of artificial turf would have a negative environmental impact. People from Cornell on Fire and Zero Waste Ithaca told me they didn’t trust the firm’s findings; representatives from Haley & Aldrich declined to comment.
Longtime activists say that as global consumption of fossil fuels declines, petrochemical companies are desperate to find other markets. That means plastics. “There’s a big push to shift more petrochemicals into plastic products for an end market,” says Jeff Gearhart, a consumer product researcher at the Ecology Center. “Industry people, with a vested interest in petrochemicals, are looking to expand and build out alternative markets for this stuff.”
All that and more went before the decision-makers in Ithaca. In September 2024, the City of Ithaca Planning Board unanimously issued a judgment that the Meinig Fieldhouse would not have a significant environmental impact and thus would not need to complete a full environmental impact assessment. Six months later, the town made the same determination for the field hockey pitch.
Zero Waste Ithaca sued in New York’s supreme court, which ruled against the group. Koizumi and lawyers from Pace University’s Environmental Litigation Clinic have appealed. She says she’s still hopeful the court might agree that Ithaca authorities made a mistake by not requiring an environmental impact statement from the college. “We have the science on our side,” she says.
Ithaca is a pretty rarefied place, an Ivy League university town. But these same tensions—potential long-term environmental and public health consequences versus the financial and maintenance concerns of the now—are pitting worried citizens against their representatives and city agencies around the country.
New York City has 286 municipal synthetic-turf fields, with more under construction. In Inwood, the northernmost neighborhood in Manhattan, two fields were approved via Zoom meetings during the pandemic, and Massimo Strino, a local artist who makes kaleidoscopes, says he found out only when he saw signs announcing the work on one of his daily walks in Inwood Hill Park, along the Hudson River. He joined a campaign against the plan, gathering more than 4,300 signatures. “I was canvassing every weekend,” Strino says. “You can count on one hand, literally, the number of people who said they were in favor.”
But that doesn’t include the group that pushed for one of those fields in the first place: Uptown Soccer, which offers free and low-cost lessons and games to 1,000 kids a year, mostly from underserved immigrant families. “It was turning an unused community space into a usable space,” says David Sykes, the group’s executive director. “That trumped the sort of abstract concerns about the environmental impacts. I’m not an expert in artificial turf, but the parks department assured me that there was no risk of health effects.”
Artificial turf doesn’t go away. “You’re going to be paying to get rid of it. Somebody will have to take it to a dump, where it will sit for a thousand years.”
Graham Peaslee, emeritus nuclear physicist studying PFAS concentrations, University of Notre Dame
New York City councilmember Christopher Marte disagrees. He has introduced a bill to ban new artificial turf from being installed in parks, and he hopes the proposal will be taken up by the Parks Committee this spring. Last session, the bill had 10 cosponsors—that’s a lot. Marte says he expects resistance from lobbyists, but there’s precedent. The city of Boston banned artificial turf in 2022.
Upstate, in a Rochester suburb called Brighton, the school district included synthetic-turf baseball and softball diamonds in a wide-ranging February 2024 capital improvement proposition. The measure passed. In a public meeting in November 2025, the school board acknowledged the intent to use synthetic grass—or, as concerned parents had it, “to rip up a quarter million square feet of this open space and replace it with artificial turf,” says David Masur, executive director of the environmental group PennEnvironment, whose kids attend school in Brighton. Parents and community members mobilized against the plan, further angered when contractors also cut down a beloved 200-year-old tree. School superintendent Kevin McGowan says it’s too late to change course. Masur has been working to oppose the plan nevertheless—he says school boards are making consequential decisions about turf without sharing information or getting input, even though these fields can cost millions of dollars of taxpayer money.
In short, the fights can get tense. On Martha’s Vineyard, in Massachusetts, a meeting about plans to install an artificial field at a local high school had to be ended early amid verbal abuse. A staffer for the local board of health who voiced concern about PFAS in the turf quit the board after discovering bullet casings in her tote bag, she said, which she perceived as a death threat. After an eight-year fight, the board eventually banned artificial turf altogether.
What happens next? Well, outdoor artificial turf lasts only eight to 12 years before it needs to be taken up and replaced. The Synthetic Turf Council says it’s at least partially recyclable and cites a company called BestPLUS Plastic Lumber as a purveyor of products made from recycled turf. The company says one of its products, a liner called GreenBoard that artificial turf can be nailed into, is at least 40% recycled from fake grass. Joseph Sadlier, vice president and general manager of plastics recycling at BestPLUS, says the company recycles over 10 million pounds annually.
Yet the material is piling up. In 2021, a Danish company called Re-Match announced plans to open a recycling plant in Pennsylvania and began amassing thousands of tons of used plastic turf in three locations. The company filed for bankruptcy in 2025.
In Ithaca, university representatives told planning boards that it would be possible to recycle the old artificial turf they ripped out to make way for the Meinig Fieldhouse. That didn’t happen. An anonymous local activist tracked the old rolls to a hauling company a half-hour’s drive south of campus and shared pictures of them sitting on the lot, where they stayed for months. It’s unclear what their ultimate fate will be.
That’s the real problem: Artificial turf just doesn’t go away. “You’re going to be paying to get rid of it,” says Peaslee, the PFAS expert. “Somebody will have to take it to a dump, where it will sit for a thousand years.” At minimum, real grass is a net carbon sink, even including installation and maintenance. Synthetic turf releases greenhouse gases. One life-cycle analysis of a 2.2-acre synthetic field in Toronto determined that it would emit 55 metric tons of carbon dioxide over a decade. Plastic fields need less water to maintain, but it takes water to make plastic, and natural grass lets rainwater seep into the ground. Synthetic turf sends most of it away as runoff.
It’s a boggling set of issues to factor into a decision. Rossi, the Cornell turf scientist, says he can understand why a school in the northern United States might go plastic, even when it cares about its students’ health. “It was the best bad option,” he says. Concerns about microplastics and PFAS are “significant issues we have not fully addressed.” And they need to be.
Douglas Main is a journalist and former senior editor and writer at National Geographic.
A central computational problem in spatial navigation is how spatial representations remain stable under noise and uncertainty, and update reliable estimations of continuous variables such as head-direction and position, which respectively rely on the head-direction system and the grid-cells system in the entorhinal cortex. The two systems demonstrate strong population-level dynamics, suggesting a potential framework to explain the critical problem of spatial representations. Currently, the framework involves continuous attractor networks and the neural field theories as an unified perspective, from which the population activity can be described as evolving of continuous variables on a low-dimensional attractor manifold, together with the selective instantiation of these dynamics across symmetry-related or context-dependent subspaces. From this viewpoint, a key question is how different sources of information, such as self-motion, sensory cues and environmental structure, interact with attractor dynamics to regulate the evolution and stability of population states. Specifically, external inputs can stabilize attractor states by anchoring them to landmarks; intrinsic network connectivity, symmetry, and multi-timescale dynamics determine whether an attractor is stable and whether it supports continuous motion; environmental boundaries and geometric constraints can systematically shape the local geometry of spatial activity patterns; direction- or context-dependent signals may selectively recruit neuronal subpopulations with specific tuning preferences; and cross-level organization of attractor dynamics, enabling a unified representational and control framework from individual decision-making to collective behavioral organization. Through the joint action of these mechanistic dimensions, continuous attractor representations are able to support the core computations required for navigation. More broadly, this perspective provides a theoretical foundation for understanding how continuous spatial representations are computed, read out, and flexibly manipulated to support planning and behavioral control.